4.7 Article

The effects of vegetation barriers on near-road ultrafine particle number and carbon monoxide concentrations

Journal

SCIENCE OF THE TOTAL ENVIRONMENT
Volume 553, Issue -, Pages 372-379

Publisher

ELSEVIER SCIENCE BV
DOI: 10.1016/j.scitotenv.2016.02.035

Keywords

Near-road; Ultrafine particle; Carbon monoxide; Vegetation barriers; Mobile measurement

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Numerous studies have shown that people living in near -roadway communities (within 100 m of the road) are exposed to high ultrafine particle (UFP) number concentrations, which may be associated with adverse health effects. Vegetation barriers have been shown to affect pollutant transport via particle deposition to leaves and altering the dispersion of emission plumes, which in turn would modify the exposure of near -roadway communities to traffic -related UlTs. In this study, both stationary (equipped with a Scanning Mobility Particle Sizer, SMPS) and mobile (equipped with Fast Mobility Particle Sizer, IMPS) measurements were conducted to investigate the effects of vegetation barriers on downwind Ulf (particle diameters ranging from 14 to 102 nm) concentrations at two sites in North Carolina, USA. One site had mainly deciduous vegetation while the other was primarily coniferous; both sites have a nearby open field without the vegetation barriers along the same stretch of limited access road, which served as a reference. During downwind conditions (traffic emissions transported towards the vegetation barrier) and when the wind speed was above or equal to 05 m/s, field measurements indicated that vegetation barriers with full foliage reduced UFP and CO concentrations by 37.7-63.6% and 23.6-56.1%, respectively. When the test was repeated at the same sites during winter periods when deciduous foliage was reduced, the deciduous barrier during winter showed no significant change in UFP concentration before and after the barrier. Results from the stationary (using SMPS) and mobile (using FMPS) measurements for UFP total number concentrations generally agreed to within 20%. 2016 Elsevier B.V. All rights reserved.

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